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Targeting the p53-MDM2 pathway for neuroblastoma therapy: Rays of hope
Atif Zafar1, Wei Wang2, Gang Liu3
1Department of Pharmacological and Pharmaceutical Sciences, College of Pharmacy, University of Houston, Houston, TX, 77204, USA.
Abstract:
Despite being the subject of extensive research and clinical trials, neuroblastoma remains a major therapeutic challenge in pediatric oncology. The p53 protein is a central safeguard that protects cells against genome instability and malignant transformation. Mutated TP53 (the gene encoding p53) is implicated in many human cancers, but the majority of neuroblastomas have wild type p53 with intact transcriptional function. In fact, the TP53 mutation rate does not exceed 1-2% in neuroblastomas. However, overexpression of the murine double minute 2 (MDM2) gene in neuroblastoma is relatively common, and leads to inhibition of p53. It is also associated with other non-canonical p53-independent functions, including drug resistance and increased translation of MYCN and VEGF mRNA. The p53-MDM2 pathway in neuroblastoma is also modulated at several different molecular levels, including via interactions with other proteins (MYCN, p14ARF). In addition, the overexpression of MDM2 in tumors is linked to a poorer prognosis for cancer patients. Thus, restoring p53 function by inhibiting its interaction with MDM2 is a potential therapeutic strategy for neuroblastoma. A number of p53-MDM2 antagonists have been designed and studied for this purpose. This review summarizes the current understanding of p53 biology and the p53-dependent and -independent oncogenic functions of MDM2 in neuroblastoma, and also the regulation of the p53-MDM2 axis in neuroblastoma. This review also highlights the use of MDM2 as a molecular target for the disease, and describes the MDM2 inhibitors currently being investigated in preclinical and clinical studies. We also briefly explain the various strategies that have been used and future directions to take in the development of effective MDM2 inhibitors for neuroblastoma.
Insights
Restoring p53 protein function by inhibiting MDM2 is a promising strategy for neuroblastoma. MDM2 inhibitors are being developed to target this pathway, offering new hope for pediatric cancer patients.
Area of Science:
- Oncology
- Molecular Biology
- Pediatric Cancer Research
Background:
- Neuroblastoma is a challenging pediatric cancer, often with wild-type p53.
- Overexpression of MDM2 inhibits p53 and promotes tumor growth and drug resistance in neuroblastoma.
- MDM2 also has p53-independent functions, contributing to disease progression.
Purpose of the Study:
- To review the role of the p53-MDM2 pathway in neuroblastoma.
- To highlight MDM2 as a therapeutic target for neuroblastoma.
- To summarize current and future strategies for MDM2 inhibitor development.
Main Methods:
- Literature review of p53 biology and MDM2 functions in neuroblastoma.
- Analysis of the p53-MDM2 axis regulation and modulation.
- Overview of preclinical and clinical studies on MDM2 inhibitors.
Main Results:
- MDM2 overexpression is common in neuroblastoma and linked to poor prognosis.
- Inhibiting the p53-MDM2 interaction is a viable therapeutic strategy.
- Various MDM2 inhibitors are under investigation for neuroblastoma treatment.
Conclusions:
- Targeting the MDM2-p53 interaction offers a promising therapeutic avenue for neuroblastoma.
- Further development of MDM2 inhibitors is crucial for improving patient outcomes.
- Understanding MDM2's multifaceted roles is key to effective neuroblastoma treatment.
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